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SYSTEM AND METHOD FOR SECURITY IN INTERNET-OF-THINGS AND CYBER-PHYSICAL SYSTEMS BASED ON MACHINE LEARNING

机译:基于机器学习的物联网和数字物理系统安全系统和方法

摘要

According to various embodiments, a method for detecting security vulnerabilities in at least one of cyber-physical systems (CPSs) and Internet of Things (IoT) devices is disclosed. The method includes constructing an attack directed acyclic graph (DAG) from a plurality of regular expressions, where each regular expression corresponds to control-data flow for a known CPS/IoT attack. The method further includes performing a linear search on the attack DAG to determine unexploited CPS/IoT attack vectors, where a path in the attack DAG that does not represent a known CPS/IoT attack vector represents an unexploited CPS/IoT attack vector. The method also includes applying a trained machine learning module to the attack DAG to predict new CPS/IoT vulnerability exploits. The method further includes constructing a defense DAG configured to protect against the known CPS/IoT attacks, the unexploited CPS/IoT attacks, and the new CPS/IoT vulnerability exploits.
机译:根据各种实施例,公开了一种用于检测电子物理系统(CPS)和物联网(IoT)设备中的至少一个中的安全漏洞的方法。该方法包括从多个正则表达式构造攻击有向无环图(DAG),其中每个正则表达式对应于已知CPS / IoT攻击的控制数据流。该方法进一步包括对攻击DAG执行线性搜索以确定未利用的CPS / IoT攻击向量,其中,攻击DAG中不代表已知CPS / IoT攻击向量的路径代表未利用的CPS / IoT攻击向量。该方法还包括将受过训练的机器学习模块应用于攻击DAG,以预测新的CPS / IoT漏洞利用。该方法进一步包括构造防御DAG,该防御DAG被配置为防御已知的CPS / IoT攻击,未利用的CPS / IoT攻击和新的CPS / IoT漏洞利用。

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